EP1361016A1 - Fülldraht zum Schweissen von rostfreiem Stahl - Google Patents

Fülldraht zum Schweissen von rostfreiem Stahl Download PDF

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Publication number
EP1361016A1
EP1361016A1 EP03008814A EP03008814A EP1361016A1 EP 1361016 A1 EP1361016 A1 EP 1361016A1 EP 03008814 A EP03008814 A EP 03008814A EP 03008814 A EP03008814 A EP 03008814A EP 1361016 A1 EP1361016 A1 EP 1361016A1
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EP
European Patent Office
Prior art keywords
content
flux
cored wire
welding
mass
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Granted
Application number
EP03008814A
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English (en)
French (fr)
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EP1361016B1 (de
Inventor
Hirohisa Fujisawa Plant Watanabe
Kuniaki Fujisawa Plant Miyazaki
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Kobe Steel Ltd
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Kobe Steel Ltd
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Publication date
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Publication of EP1361016A1 publication Critical patent/EP1361016A1/de
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Publication of EP1361016B1 publication Critical patent/EP1361016B1/de
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
    • B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
    • B23K35/36—Selection of non-metallic compositions, e.g. coatings or fluxes; Selection of soldering or welding materials, conjoint with selection of non-metallic compositions, both selections being of interest
    • B23K35/368—Selection of non-metallic compositions of core materials either alone or conjoint with selection of soldering or welding materials
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
    • B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
    • B23K35/24—Selection of soldering or welding materials proper
    • B23K35/30—Selection of soldering or welding materials proper with the principal constituent melting at less than 1550°C
    • B23K35/3053—Fe as the principal constituent
    • B23K35/308—Fe as the principal constituent with Cr as next major constituent
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
    • B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
    • B23K35/24—Selection of soldering or welding materials proper
    • B23K35/30—Selection of soldering or welding materials proper with the principal constituent melting at less than 1550°C
    • B23K35/3053—Fe as the principal constituent
    • B23K35/308—Fe as the principal constituent with Cr as next major constituent
    • B23K35/3086—Fe as the principal constituent with Cr as next major constituent containing Ni or Mn

Definitions

  • the present invention relates to a flux-cored wire, for stainless steel welding, capable of reducing water-soluble Cr contained in slag and fumes produced during welding using the flux-cored wire.
  • the quantity of flux-cored wires used in recent years has increased owing to the capability of flux-cored wires in ensuring excellent welding work and efficient welding.
  • the ratio of the quantity of flux-cored wires to the total quantity of welding wires used for stainless steel welding is high, and various flux-cored wires of compositions respectively suitable for welding various kinds of base metals, and various flux-cored wires for different welding positions have been developed.
  • Slag and fumes produced when the conventional flux-cored wire for stainless steel welding is used for welding contain Cr in a Cr content of 10% by mass or above. This Cr contains water-soluble Cr, namely, hexavalent Cr.
  • the released hexavalent Cr content of fumes treated by an invention disclosed in JP-A No. 52-114447 is 700 ppm at a minimum, which is a very high content.
  • the present invention has been made in view of the foregoing problems and it is therefore an object of the present invention to provide a flux-cored wire for stainless steel welding capable of reducing the hexavalent Cr content of slag and fumes produced by stainless steel welding and of ensuring satisfactory welding work.
  • a flux-cored wire for stainless steel welding comprises a metal tube, and a flux filled in the metal tube; wherein the content of a Si source contained in both the metal tube and the flux or in either the metal tube or the flux in terms of Si content [Si] expressed by the ratio in percent of the mass of the Si source to the total mass of the flux-cored wire is in the range of 1.0 to 4.0% by mass, the content of a Ti source contained in both the metal tube and the flux or either the metal tube or the flux in terms of Ti content [Ti], and the content of a Zr source contained in both the metal tube and the flux or either the metal tube or the flux in terms of Zr content [Zr] meet an inequality: [Si]/([Ti] + [Zr]) ⁇ 0.8, the content of a Cr source contained in both the metal tube and the flux or in either the metal tube or the flux in terms of Cr content [Cr] is in the range of 16 to 30% by mass, and the flux contains one or two kinds of a Na
  • the flux-cored wire for stainless steel welding is further characterized in that the content of a F source contained in the flux in terms of F content is 0.010 to 0.120% by mass to the total mass of the flux-cored wire.
  • the flux-cored wire for stainless steel welding is further characterized in that the metal tube is formed of a stainless steel containing Cr in a Cr content of 18% by mass or above.
  • the flux-cored wire for stainless steel welding is further characterized in that the Ti content [Ti], the Zr content [Zr] or the sum of the Ti content [Ti] and the Zr content [Zr] is in the range of 0.8 to 3.0% by mass, and the Na content [Na], the K content [K] or the sum of the Na content [Na] and the K content [K] is in the range of 0.03 to 0.15% by mass.
  • the present invention reduces the hexavalent Cr concentrations of slag and fumes produced by welding stainless steels and improves welding performance.
  • the present invention will be described hereinafter.
  • the inventors of the present invention have found through the investigation of flux-cored wires for stainless steel welding that, when both slag and fumes contain hexavalent Cr, the Cr content of fumes is always several tens to several hundreds times higher than that of slag. Therefore, the quantity of hexavalent Cr contained in slag can be reduced necessarily to a desired level by reducing the quantity of hexavalent Cr contained in fumes. It was found through the examination of the compositions of slag produced by flux-cored wires having the same Cr content that the eluted hexavalent Cr value of slag produced by wires having a Si content is smaller than that of slag produced by rutile type covered wires.
  • the inventors of the present invention made experimental studies on the basis of the foregoing facts to solve the foregoing problems and have found that the quantity of eluted hexavalent Cr contained in slag and fumes can be reduced by adjusting the slag-producing components of wires, reducing the quantities of Na and K and increasing the quantity of Cr contained in hoops (tubes), and satisfactory welding work can be achieved.
  • [Si] represents Si source content in terms of Si content, and the contents of other sources of elements will be similarly expressed.
  • Si sources are Si contained in the metal tube of the flux-cored wire, and metal Si, and Si compounds including Fe-Si, silica sand and feldspar contained in the flux.
  • Ti and Zr are added to adjust welding performance. If Ti content, Zr content or the sum of Ti content and Zr content is larger than Si content, the vitrification ratio of slag and fumes is low and the quantity of eluted Cr tends to increase. Therefore, Ti content, Zr content or the sum of Ti content and Zr content is controlled in connection with Si content. To increase the vitrification ratio and to reduce the quantity of eluted Cr, ([Ti] + [Zr]) ⁇ [Si]/0.8. Ti and Zr improve the covering performance of slag produced by welding and improve the shape of beads and hence it is preferable that ([Ti] + [Zr]) ⁇ 0.8% by mass.
  • Ti sources include Ti contained in the metal tube, and metal Ti or Fe-Ti, and an oxide, such as rutile, contained in the flux.
  • Zr sources include Zr contained in the metal tube, and Zr oxide or a Zr compound, such as Zr sand, contained in the flux.
  • the quantity of eluted Cr contained in slag and fumes produced by welding is on an insignificant level if the content of Cr, which is an essential component of a stainless steel, is less than 16% by mass.
  • the adjustment of welding performance is very difficult if the Cr content exceeds 30% by mass. Therefore, the Cr content is in the range of 16 to 30% by mass.
  • the metal tube is formed of a stainless steel having a Cr content of 18% by mass or above to use the metal tube having a Cr content of 18% by mass or above instead of the flux as a Cr source to reduce the quantity of eluted Cr.
  • Stainless steels having a Cr content of 18% or above are SUS430, SUS304, SUS304L, SUS309S and such specified by JIS.
  • Fig. 1 is a graph showing the variation of the respective water-soluble Cr concentrations of fumes and slag produced by welding with the Cr content of a wire. The welding was performed under Welding condition No. 1 shown in Table 5.
  • the Cr content of the wire, and the quantities of water-soluble Cr contained respectively in the slag and the fumes correlate, and the quantities of water-soluble Cr contained respectively in the slag and the fumes increase at exponential rates, respectively, as the Cr content of the wire increases.
  • the water-soluble Cr concentration of the fumes is more than hundred times greater than that of the slag for the same Cr content of the wire.
  • Fig. 2 is a graph showing the dependence of the water-soluble Cr concentration of fumes on the Na+K content and the Cr content of wires, in which the Na+K content is measured on the vertical axis and the Cr content is measured on the horizontal axis. Welding was performed under Welding condition No. 1. shown in Fig. 5. In Fig.
  • triangles indicate conditions where the water-soluble Cr concentration is 100 ppm or below, circles indicate conditions where the water-soluble Cr concentration is 10 ppm or below, and crosses indicate conditions where the water-soluble Cr concentration is greater than 100 ppm.
  • the water-soluble Cr concentration of fumes can be reduced to 100 ppm or below (conditions indicated by triangles and circles) by reducing the Na+K content of the wire according to the Cr content of the wire.
  • the flux-cored wire contains Na and K such that ([Na] + [K]) is in the range of 0.03 to 0.15% by mass.
  • Possible Na sources and K sources are fluorides or oxides of Na and K, and Na compounds and K compounds, such as feldspar.
  • Fig. 3 is a graph showing the variation of the water-soluble Cr concentration of fumes with welding current, in which the water-soluble Cr concentration of fumes is measured on the vertical axis and welding current is measured on the horizontal axis. Shielding gas was 100% CO 2 gas. As obvious from Fig. 3, the water-soluble Cr concentration of fumes increases as the welding current increases beyond 250 A and increases sharply as the welding current increases beyond 300 A. Thus, it is preferable that the welding current is 250 A or below, more preferably, 200 A or below.
  • Fig. 4 is a graph showing the variation of the water-soluble Cr concentration of fumes with the Ar concentration of the shielding gas, in which the water-soluble Cr concentration is measured on the vertical axis and the Ar concentration is measured on the horizontal axis.
  • the welding current was 200 A.
  • the shielding gas is CO 2 gas
  • the water-soluble Cr concentration of fumes is very small.
  • the water-soluble Cr concentration of fumes increases as the Ar concentration increases beyond 60% and increases sharply as the Ar concentration increases beyond 80%.
  • the Ar concentration of a shielding gas consisting of Ar gas and CO 2 gas is 80% or below, more preferably, 60% or below.
  • Fluorides dissociate easily in a welding arc and provide an effect of reducing partial pressure of oxygen. Therefore, fluorides are effective in suppressing oxidization of Cr. Further, fluorides are added in order to control flowability of a slag and reduce pits.
  • a fluoride of Na or K is generally used as the fluoride. However, contents of Na and K should be reduced in the present invention.
  • the inventors investigated metal fluorides which do not provide an undesirable effect in the amount of eluted Cr but provide the desirable effects of fluorides. As the result, it was found that AlF 3 , MgF 2 and LiF were effective in stead of a small amount of NaF.
  • Flux-cored wires shown in Tables 1 to 3 were manufactured by using metal tubes of compositions (percent by mass) shown in Table 4, and welding tests were performed under welding conditions shown in Table 5. Results of evaluation of water-soluble Cr concentrations and welding performance are shown in Tables 6 and 7.
  • Fumes were sampled by a method conforming to "Method of Measuring Total Fumes Produced by Coated Electrode" specified in Z3930, JIS. Fumes were sampled by a fume sampling method obtained by improving the method of measuring total fumes produced by coated electrode specified in Z3930, JIS.
  • a welding torch, a test plate and a carriage were placed in a fume quantity measuring apparatus to collect fumes produced by a flux-cored wire. Welding operations using sample wires were conducted under the welding conditions shown in Table 5, and produced fumes were collected. A filter was removed after the completion of the welding operation, and collected fumes were subjected to tests.
  • Water-soluble Cr was eluted by an elution method conforming to a method of detecting metals contained in industrial waste (Environmental Advice in Japan No. 13, Feb. 17, 1973, Revised later). Specifically, water-soluble Cr was eluted from slag by the following procedure.
  • the hexavalent Cr concentrations of the test eluates thus prepared were measured by a method specified in K0102, JIS. Measurements obtained by measuring the fumes were multiplied by ten to adjust the measurements to the concentration of the test liquid obtained by processing the slag.
  • Tables 6 and 7 give the results of tests of the flux-cored wires in comparative examples and examples, respectively.
  • Wires Nos. 9 to 19 are flux-cored wires embodying the present invention.
  • Examples 1 to 14 using the flux-cored wires Nos. 9 to 19 proved that the flux-cored wires of the present invention achieved both the reduction of the quantity of eluated Cr and satisfactory welding performance.
  • Example 2 using the flux-cored wire No. 9 and a high welding current (welding condition 2 given in Table 5) and Example 4 using the flux-cored wire No. 4 and CO 2 shielding gas containing 20% Ar gas(welding condition No. 4 given in Table 5) were somewhat greater than those of fumes produced in Example 3 using a low welding current (welding condition 3 given in Table 5) and Example 1 using 100% CO 2 shielding gas (welding condition 1 given in Table 5), respectively.
  • the metal tube No. 2 of the flux-cored wire No. 12 has a small Cr content as shown in Table 4 relative to the Cr content of the flux-cored wire
  • the metal tube No. 1 of the flux-cored wire No. 16 has a small Cr content as compared with a comparatively large Cr content of the flux-cored wire as shown in table 1. Consequently, Examples 11 and 13 respectively using the flux-cored wires 16 and 18 has somewhat large water-soluble Cr concentrations.
  • Example 14 using the flux-cored wire No. 19 having a large ([Na] + [K]) the water-soluble Cr concentration was somewhat large.
  • the flux-cored wires in Comparative examples No. 1 to No. 8 have the following problems.
  • the flux-cored wire in Comparative example 1 having a small Si content and a small value of [Si]/([Ti] + [Zr]) is incapable of reducing the Cr concentration of the eluate.
  • the flux-cored wire in Comparative example 2 having an excessively large Si content produced welding slag that was very hard to remove, and was unsuitable for practical welding.
  • the flux-cored wires in Comparative examples 3 and 4 having small values of [Si]/([Ti] + [Zr]) could not satisfactorily reduce the Cr concentration of the eluate.
  • the flux-cored wires in Comparative examples 5 and 6 having a excessively large ([Na] + [K]) relative to [Cr] had an excessively large value of ([Na] + [K]) ⁇ [Cr] 2 and could not satisfactorily reduce the Cr concentration of the eluate.
  • the flux-cored wire in Comparative example 7 having an excessively large value of [Cr] as compared with the value of ([Na] + [K]) had an excessively large value of ([Na] + [K]) ⁇ [Cr] 2 and could not satisfactorily reduce the Cr concentration of the eluate.
  • the flux-cored wire in Comparative example 8 having an excessively large Cr content was unsatisfactory in the capability of reducing the Cr concentration of the eluate and welding performance.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Nonmetallic Welding Materials (AREA)
EP20030008814 2002-04-30 2003-04-23 Fülldraht zum Schweissen von rostfreiem Stahl Expired - Lifetime EP1361016B1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2002129419 2002-04-30
JP2002129419A JP3765772B2 (ja) 2002-04-30 2002-04-30 ステンレス鋼溶接用フラックス入りワイヤ

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EP1361016A1 true EP1361016A1 (de) 2003-11-12
EP1361016B1 EP1361016B1 (de) 2005-11-09

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EP (1) EP1361016B1 (de)
JP (1) JP3765772B2 (de)
DE (1) DE60302179T2 (de)
NO (1) NO334604B1 (de)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070193995A1 (en) * 2006-02-21 2007-08-23 Lincoln Global, Inc. High strength stick electrode
EP2495066A1 (de) * 2011-03-01 2012-09-05 Kabushiki Kaisha Kobe Seiko Sho Edelstahlfülldraht
US9751158B2 (en) 2010-01-27 2017-09-05 Kobe Steel, Ltd. Stainless steel flux cored wire
CN112692465A (zh) * 2021-03-25 2021-04-23 四川西冶新材料股份有限公司 以长纤维硅灰石为框架的低密度堆焊焊剂及其制备方法

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5065733B2 (ja) * 2007-03-29 2012-11-07 日鐵住金溶接工業株式会社 ステンレス鋼溶接用フラックス入りワイヤおよびその製造方法
JP5289760B2 (ja) * 2007-12-26 2013-09-11 日鐵住金溶接工業株式会社 ステンレス鋼溶接用フラックス入りワイヤおよびその製造方法

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4131784A (en) * 1976-03-23 1978-12-26 Kobe Steel, Ltd. Coated welding electrode containing chromium
JPS6313695A (ja) * 1986-07-02 1988-01-20 Kobe Steel Ltd ステンレス鋼溶接用フラツクス入りワイヤ
EP0450794A1 (de) * 1990-03-22 1991-10-09 Inco Alloys International, Inc. Rostfreistahlschweisselektrode mit niedriger Rauchentwicklung
US5124529A (en) * 1990-02-22 1992-06-23 Kabushiki Kaisha Kobe Seiko Sho Flux-cored wire for welding stainless steel
US5124530A (en) * 1990-03-22 1992-06-23 Inco Alloys International, Inc. Stable low fume stainless steel welding electrode
US20020008096A1 (en) * 2000-06-07 2002-01-24 Jongwon Kim Flux cored wire for arc-welding of austenitic stainless steel

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4131784A (en) * 1976-03-23 1978-12-26 Kobe Steel, Ltd. Coated welding electrode containing chromium
JPS6313695A (ja) * 1986-07-02 1988-01-20 Kobe Steel Ltd ステンレス鋼溶接用フラツクス入りワイヤ
US5124529A (en) * 1990-02-22 1992-06-23 Kabushiki Kaisha Kobe Seiko Sho Flux-cored wire for welding stainless steel
EP0450794A1 (de) * 1990-03-22 1991-10-09 Inco Alloys International, Inc. Rostfreistahlschweisselektrode mit niedriger Rauchentwicklung
US5124530A (en) * 1990-03-22 1992-06-23 Inco Alloys International, Inc. Stable low fume stainless steel welding electrode
US20020008096A1 (en) * 2000-06-07 2002-01-24 Jongwon Kim Flux cored wire for arc-welding of austenitic stainless steel

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
PATENT ABSTRACTS OF JAPAN vol. 012, no. 208 (M - 709) 15 June 1988 (1988-06-15) *

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070193995A1 (en) * 2006-02-21 2007-08-23 Lincoln Global, Inc. High strength stick electrode
US8269144B2 (en) * 2006-02-21 2012-09-18 Lincoln Global, Inc. High strength stick electrode
US8921737B2 (en) 2006-02-21 2014-12-30 Lincoln Global, Inc. High strength stick electrode
US9751158B2 (en) 2010-01-27 2017-09-05 Kobe Steel, Ltd. Stainless steel flux cored wire
EP2495066A1 (de) * 2011-03-01 2012-09-05 Kabushiki Kaisha Kobe Seiko Sho Edelstahlfülldraht
US10369666B2 (en) 2011-03-01 2019-08-06 Kobe Steel, Ltd. Stainless steel flux-cored wire
CN112692465A (zh) * 2021-03-25 2021-04-23 四川西冶新材料股份有限公司 以长纤维硅灰石为框架的低密度堆焊焊剂及其制备方法

Also Published As

Publication number Publication date
NO20031935D0 (no) 2003-04-29
EP1361016B1 (de) 2005-11-09
JP3765772B2 (ja) 2006-04-12
DE60302179D1 (de) 2005-12-15
JP2003320480A (ja) 2003-11-11
DE60302179T2 (de) 2006-07-27
NO20031935L (no) 2003-10-31
NO334604B1 (no) 2014-04-22

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